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Gnainsky, Y.* ; Zfanya, N.* ; Elgart, M.* ; Omri, E.* ; Brandis, A.* ; Mehlman, T.* ; Itkin, M.* ; Malitsky, S.* ; Adamski, J. ; Soen, Y.*

Systemic regulation of host energy and oogenesis by microbiome-derived mitochondrial coenzymes.

Cell Rep. 34:108583 (2021)
Verlagsversion Forschungsdaten DOI
Open Access Gold
Creative Commons Lizenzvertrag

Gut microbiota have been shown to promote oogenesis and fecundity, but the mechanistic basis of remote influence on oogenesis remained unknown. Here, we report a systemic mechanism of influence mediated by bacterial-derived supply of mitochondrial coenzymes. Removal of microbiota decreased mitochondrial activity and ATP levels in the whole-body and ovary, resulting in repressed oogenesis. Similar repression was caused by RNA-based knockdown of mitochondrial function in ovarian follicle cells. Reduced mitochondrial function in germ-free (GF) females was reversed by bacterial recolonization or supplementation of riboflavin, a precursor of FAD and FMN. Metabolomics analysis of GF females revealed a decrease in oxidative phosphorylation and FAD levels and an increase in metabolites that are degraded by FAD-dependent enzymes (e.g., amino and fatty acids). Riboflavin supplementation opposed this effect, elevating mitochondrial function, ATP, and oogenesis. These findings uncover a bacterial-mitochondrial axis of influence, linking gut bacteria with systemic regulation of host energy and reproduction.

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Publikationstyp Artikel: Journalartikel
Dokumenttyp Wissenschaftlicher Artikel
Korrespondenzautor
Schlagwörter Drosophila ; Metabolomics ; Microbiome ; Mitochondria ; Oogenesis ; Riboflavin; Gut Microbiota; Life-span; Drosophila; Metabolism; Cells; Bacteria; Growth; Homeostasis; Infection; Carrier
ISSN (print) / ISBN 2211-1247
e-ISSN 2211-1247
Zeitschrift Cell Reports
Quellenangaben Band: 34, Heft: 1, Seiten: , Artikelnummer: 108583 Supplement: ,
Verlag Cell Press
Verlagsort 50 Hampshire St, Floor 5, Cambridge, Ma 02139 Usa
Nichtpatentliteratur Publikationen
Begutachtungsstatus Peer reviewed
Institut(e) Molekulare Endokrinologie und Metabolismus (MEM)
Förderungen Sir John Templeton Foundation
Vera and John Schwartz Family Center for Metabolic Biology